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Light transport in turbid media with non-scattering low-scattering and high absorption heterogeneities based on hybrid simplified spherical harmonics with radiosity model

机译:基于辐射度模型的混合简化球谐函数在具有非散射低散射和高吸收异质性的混浊介质中的光传输

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摘要

Modeling light propagation in the whole body is essential and necessary for optical imaging. However, non-scattering, low-scattering and high absorption regions commonly exist in biological tissues, which lead to inaccuracy of the existing light transport models. In this paper, a novel hybrid light transport model that couples the simplified spherical harmonics approximation (SPN) with the radiosity theory (HSRM) was presented, to accurately describe light transport in turbid media with non-scattering, low-scattering and high absorption heterogeneities. In the model, the radiosity theory was used to characterize the light transport in non-scattering regions and the SPN was employed to handle the scattering problems, including subsets of low-scattering and high absorption. A Neumann source constructed by the light transport in the non-scattering region and formed at the interface between the non-scattering and scattering regions was superposed into the original light source, to couple the SPN with the radiosity theory. The accuracy and effectiveness of the HSRM was first verified with both regular and digital mouse model based simulations and a physical phantom based experiment. The feasibility and applicability of the HSRM was then investigated by a broad range of optical properties. Lastly, the influence of depth of the light source on the model was also discussed. Primary results showed that the proposed model provided high performance for light transport in turbid media with non-scattering, low-scattering and high absorption heterogeneities.
机译:对整个身体中的光传播进行建模对于光学成像至关重要,也是必需的。然而,生物组织中通常存在非散射,低散射和高吸收区域,这导致现有的光传输模型不准确。本文提出了一种新颖的混合光传输模型,该模型将简化的球谐近似(SPN)与辐射度理论(HSRM)耦合在一起,以准确描述在具有非散射,低散射和高吸收异质性的混浊介质中的光传输。在模型中,使用光能传递理论来表征非散射区域中的光传输,并使用SPN来处理散射问题,包括低散射和高吸收的子集。将通过在非散射区域中的光传输构造并形成在非散射和散射区域之间的界面处的诺伊曼光源叠加到原始光源中,以将SPN与辐射度理论耦合起来。 HSRM的准确性和有效性首先通过基于常规和数字鼠标模型的仿真以及基于物理幻像的实验进行了验证。然后通过广泛的光学性能研究了HSRM的可行性和适用性。最后,讨论了光源深度对模型的影响。初步结果表明,该模型为非散射,低散射和高吸收异质性的混浊介质中的光传输提供了高性能。

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